Chirality induction to achiral molecules by silica-coated chiral molecular assemblies.

circular dichroism circularly polarized luminescence excimer emission induced chirality silica nanohelice

Journal

Chirality
ISSN: 1520-636X
Titre abrégé: Chirality
Pays: United States
ID NLM: 8914261

Informations de publication

Date de publication:
09 2021
Historique:
revised: 22 06 2021
received: 26 05 2021
accepted: 02 07 2021
pubmed: 24 7 2021
medline: 24 7 2021
entrez: 23 7 2021
Statut: ppublish

Résumé

Hybrid silica-organic nanohelices are used to organize a large variety of nonchiral small organic molecules or inorganic anions to nanometer-sized assemblies. Such chiral organization of achiral molecules induces chiroptical properties as detected by vibrational or electronic circular dichroism (CD), as well as from circularly polarized luminescence (CPL).

Identifiants

pubmed: 34296461
doi: 10.1002/chir.23339
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

494-505

Subventions

Organisme : Kyoto University
Organisme : European Union's Horizon 2020 research and innovation program
ID : 828779
Organisme : Université de Bordeaux
Organisme : Centre National de la Recherche Scientifique
Organisme : Japan Society for the Promotion of Science
ID : 17K05000
Organisme : Japan Society for the Promotion of Science
ID : 19K15376
Organisme : ANR
ID : ANR-CONACYT-159884
Organisme : Japan Science and Technology Agency

Informations de copyright

© 2021 Wiley Periodicals LLC.

Références

Knowles WS. Asymmetric hydrogenation. Acc Chem Res. 1983;16(3):106-112.
Noyori R, Takaya H. BINAP: an efficient chiral element for asymmetric catalysis. Acc Chem Res. 1990;23(10):345-350.
Ooi T, Maruoka K. Recent advances in asymmetric phase-transfer catalysis. Angew Chem Int Ed. 2007;46(23):4222-4266.
Brak K, Jacobsen EN. Asymmetric ion-pairing catalysis. Angew Chem Int Ed. 2013;52(2):534-561.
Bodwin JJ, Cutland AD, Malkani RG, Pecoraro VL. The development of chiral metallacrowns into anion recognition agents and porous materials. Coord Chem Rev. 2001;216-217:489-512.
Dai Z, Lee J, Zhang W. Chiroptical switches: applications in sensing and catalysis. Molecules. 2012;17(2):1247-1277.
Heffern MC, Matosziuk LM, Meade TJ. Lanthanide probes for bioresponsive imaging. Chem Rev. 2014;114(8):4496-4539.
Imai Y, Kawano K, Nakano Y, et al. Control of circularly polarized luminescence (CPL) properties by supramolecular complexation. New J Chem. 2008;32(7):1110-1112.
Nakamura M, Ota F, Takada T, Akagi K, Yamana K. Circularly polarized luminescence of helically assembled pyrene π-stacks on RNA and DNA duplexes. Chirality. 2018;30(5):602-608.
Li H, Cheng J, Deng H, et al. Aggregation-induced chirality, circularly polarized luminescence, and helical self-assembly of a leucine-containing AIE luminogen. J Mater Chem C. 2015;3(10):2399-2404.
Goto T, Okazaki Y, Ueki M, et al. Induction of strong and tunable circularly polarized luminescence of nonchiral, nonmetal, low-molecular-weight fluorophores using chiral nanotemplates. Angew Chem Int Ed. 2017;56(11):2989-2993.
Jiang Q, Xu X, Yin PA, et al. Circularly polarized luminescence of achiral cyanine molecules assembled on DNA templates. J Am Chem Soc. 2019;141(24):9490-9494.
Han J, Yang D, Jin X, Jiang Y, Liu M, Duan P. Enhanced circularly polarized luminescence in emissive charge-transfer complexes. Angew Chem Int Ed. 2019;58(21):7013-7019.
Zhu X, Duan P, Zhang L, Liu M. Regulation of the chiral twist and supramolecular chirality in co-assemblies of amphiphilic L-glutamic acid with bipyridines. Chem A Eur J. 2011;17(12):3429-3437.
Brizard A, Berthier D, Aimé C, et al. Molecular and supramolecular chirality in gemini-tartrate amphiphiles studied by electronic and vibrational circular dichroisms. Chirality. 2009;21(1E):E153-E162.
Hu L, Li K, Shang W, Zhu X, Liu M. Emerging cubig chirality in γCD-MOF for fabricating circularly polarized luminescent crystalline materials and the size effect. Angew Chem Int Ed. 2017;59:4953-4958.
Ryu N, Okazaki Y, Hirai K, et al. Memorized chiral arrangement of gemini surfactant assemblies in nanometric hybrid organic-silica helices. Chem Commun. 2016;52(34):5800-5803.
Yospanya W, Nishijima M, Araki Y, et al. Near perfect head-to-head selectivity on the supramolecular photocyclodimerisation of 2-anthracenecarboxylate with self-organised gemini surfactant bilayers. Chem Commun. 2020;56(69):10058-10061.
Okazaki Y, Ryu N, Buffeteau T, et al. Induced circular dichroism of monoatomic anions: silica-assisted the transfer of chiral environment from molecular assembled nanohelices to halide ions. Chem Commun. 2018;54(73):10244-10247.
Oda R, Artzner F, Laguerre M, Huc I. Molecular structure of self-assembled chiral nanoribbons and nanotubules revealed in the hydrated state. J Am Chem Soc. 2008;130(44):14705-14712.
Oda R, Huc I, Candau SJ. Gemini surfactants as new, low molecular weight gelators of organic solvents and water. Angew Chem Int Ed. 1998;37(19):2689-2691.
Oda R, Huc I, Schmuts M, Candau SJ, MacKintosh FC. Tuning bilayer twist using chiral counterions. Nature. 1999;399(6736):566-569.
Nagao Y, Naito T, Abe Y, Misono T. Synthesis and properties of long and branched alkyl chain substituted perylenetetracarboxylic monoanhydride monoimides. Dyes Pigm. 1996;32(2):71-83.
Kaiser TE, Wang H, Stepanenko V, Würthner F. Supramolecular construction of fluorescent J-aggregates based on hydrogen-bonded perylene dyes. Angew Chem Int Ed. 2007;46(29):5541-5544.
Gao J, Okazaki Y, Pouget E, et al. Slow kinetic evolution of nanohelices based on gemini surfactant self-assemblies with various enantiomeric excess; chiral segregation towards a racemic mixture. Mater Chem Front. 2021;5(7):3021-3028.
Scalabre A, Gutierrez-Vilchez AM, Sastre-Santos A, Fernandez-Lazaro F, Bassani DM, Oda R. Supramolecular induction of topological chirality from nanoscale helical silica scaffolds to achiral molecular chromophores. J Phys Chem C. 2020;124(43):23839-23843.
Stefanelli M, Savioli M, Zurlo F, et al. Porphyrins through the looking glass: spectroscopic and mechanistic insights in supramolecular chirogenesis of new self-assembled porphyrin derivatives. Front Chem. 2020;8:587842. https://doi.org/10.3389/fchem.2020.587842
Occhiuto I, Luca GD, Villari V, et al. Supramolecular chirality transfer to large random aggregates of porphyrins. Chem Commun. 2011;47(21):6045-6047.
Castriciano MA, Romeo A, Luca GD, Villari V, Scolaro LM, Micali N. Scaling the chirality in porphyrin J-nanoaggregates. J Am Chem Soc. 2011;133(4):765-767.
Manet S, Karpichev Y, Bassani D, Kiagus-Ahmad R, Oda R. Counteranion effect on micellization of cationic gemini surfactants 14-2-14: Hofmeister and other counterions. Langmuir. 2010;26(13):10645-10656.
Nostro PL, Fratoni L, Ninham BW, Baglioni P. Water absorbency by wool fibers: Hofmeister effect. Biomacromolecules. 2002;3(6):1217-1224.
Ryu N, Kawaguchi T, Yanagita H, et al. Chirality induction on non-chiral dye-linked polysilsesquioxane in nanohelical structures. Chem Commun. 2020;56(53):7241-7244.
Inouye M, Hayashi K, Yonenaga Y, et al. A doubly alkynylpyrene-threaded [4]rotaxane that exhibits strong circularly polarized luminescence from the spatially restricted excimer. Angew Chem Int Ed. 2014;53(52):14392-14396.
Kano K, Matsumoto H, Hashimoto S, Sisido M, Imanishi Y. A chiral pyrene excimer in .gamma.-cyclodextrin cavity. J Am Chem Soc. 1985;107(21):6117-6118.

Auteurs

Antoine Scalabre (A)

Institute of Chemistry & Biology of Membrane & Nanoobjects (UMR 5248 CBMN), CNRS - Université de Bordeaux - Bordeaux INP, Pessac, France.

Yutaka Okazaki (Y)

Graduate School of Energy Science, Kyoto University, Kyoto, Japan.

Balamurugan Kuppan (B)

Institute of Chemistry & Biology of Membrane & Nanoobjects (UMR 5248 CBMN), CNRS - Université de Bordeaux - Bordeaux INP, Pessac, France.

Thierry Buffeteau (T)

Institut des Sciences Moléculaires (UMR5255 ISM), CNRS - Université de Bordeaux, Talence, France.

Fabrizio Caroleo (F)

Dept. of Chemical Science and Technologies, University of Rome Tor Vergata, Rome, Italy.

Gabriele Magna (G)

Dept. of Chemical Science and Technologies, University of Rome Tor Vergata, Rome, Italy.

Donato Monti (D)

Dept. of Chemical Science and Technologies, University of Rome Tor Vergata, Rome, Italy.

Roberto Paolesse (R)

Dept. of Chemical Science and Technologies, University of Rome Tor Vergata, Rome, Italy.

Manuela Stefanelli (M)

Dept. of Chemical Science and Technologies, University of Rome Tor Vergata, Rome, Italy.

Sylvain Nlate (S)

Institute of Chemistry & Biology of Membrane & Nanoobjects (UMR 5248 CBMN), CNRS - Université de Bordeaux - Bordeaux INP, Pessac, France.

Emilie Pouget (E)

Institute of Chemistry & Biology of Membrane & Nanoobjects (UMR 5248 CBMN), CNRS - Université de Bordeaux - Bordeaux INP, Pessac, France.

Hirotaka Ihara (H)

Department of Applied Chemistry and Biochemistry, Kumamoto University, Kumamoto, Japan.

Dario M Bassani (DM)

Institut des Sciences Moléculaires (UMR5255 ISM), CNRS - Université de Bordeaux, Talence, France.

Reiko Oda (R)

Institute of Chemistry & Biology of Membrane & Nanoobjects (UMR 5248 CBMN), CNRS - Université de Bordeaux - Bordeaux INP, Pessac, France.

Classifications MeSH